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Quantum Algo Matrix

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Quantum Algo Matrix — Full Indicator Description
Overview

Quantum Algo Matrix is a multi-layered quantitative trading system designed to identify high-probability reversal and continuation zones by fusing:

Volatility extremes

Momentum exhaustion

Multi-timeframe correlation

Statistical volatility compression

Adaptive AI-driven trend clustering

The script is non-overlay, plotted in a dedicated oscillator pane, and operates as a signal-confirmation engine, not a simple buy/sell indicator.

It is built to filter noise, avoid false signals, and only trigger when multiple independent conditions agree.

Core Components & Indicators Used

This system integrates and expands upon the following well-known concepts:

Williams Vix Fix

WaveTrend Oscillator

Squeeze Momentum Indicator

SuperTrend

Multi-Timeframe Momentum Correlation

AI-style K-Means Volatility Clustering (custom implementation)

Each component has a specific role, and no signal is generated without confluence.

1. Williams Vix Fix (WVF) — Volatility Exhaustion Engine
Purpose

The WVF module detects panic-level volatility spikes, which often occur near market bottoms or tops.

How It Works

Calculates volatility using the distance from the recent highest close

Applies:

Bollinger Bands

Percentile-based extreme zones

Flags conditions where volatility exceeds statistically rare thresholds

Key Outputs

Upper Band / Percentile High → Fear / capitulation

Lower Band / Percentile Low → Volatility contraction

Reversal Signals

Bullish when WVF crosses up from extreme lows

Bearish when WVF crosses down from extreme highs

⚠️ WVF signals are gated and never act alone

2. WaveTrend Oscillator V2 — Momentum & Market Structure
Purpose

WaveTrend defines market momentum zones and filters trend direction vs. exhaustion.

Core Calculations

EMA-based channel deviation

Smoothed momentum curve (WT1)

Signal line (WT2)

Histogram difference (WT Histogram)

Zones
Zone Meaning
OB Level 0 / 1 / 2 Strong → Mild overbought
OS Level 0 / 1 / 2 Strong → Mild oversold
Signals

Histogram zero-line crosses = momentum shift

Dot markers highlight high-probability exhaustion points

Acts as the primary signal gate for all other modules

3. Multi-Timeframe WaveTrend Correlation (MTF Filter)
Purpose

Prevents single-timeframe traps by requiring higher-timeframe agreement.

Supported Timeframes

15m

30m

45m

60m

120m

240m

Logic

A signal is only valid if enabled timeframes confirm:

Overbought → bearish bias

Oversold → bullish bias

This drastically reduces false reversals.

4. WVF + WT Reversal Gating (Quantum Logic)
Concept

Volatility reversals only matter if momentum is already stretched.

Conditions

WaveTrend must be:

Overbought or

Oversold

WVF must:

Cross below extreme high → bearish

Cross above extreme low → bullish

Distance must exceed a tolerance threshold

This creates true exhaustion-based reversal signals.

5. Combined Signal Memory System
Purpose

Markets do not move instantly.
This module remembers signals until both components confirm.

Tracks

WaveTrend exhaustion trigger

WVF reversal trigger

Result

Fires only once per cycle

Eliminates rapid-fire, repaint-style signals

6. Squeeze Momentum Engine (Volatility Compression)
Purpose

Identifies compression → expansion phases.

Method

Bollinger Bands vs. Keltner Channels

Linear-regression-based momentum histogram

Color-coded momentum strength

Special Feature

Histogram can be scaled to the WaveTrend range

Allows direct visual correlation with momentum zones

7. AI SuperTrend Cluster Engine (Advanced)
This Is Not a Normal SuperTrend

Instead of using a single ATR multiplier, the system:

Calculates multiple SuperTrend states

Measures price deviation from each

Feeds results into an AI-style clustering process

Produces:

Bullish cluster

Neutral cluster

Bearish cluster

Output

Adaptive bullish & bearish pressure waves

Smoothed AI consensus

Optional strength histogram

This allows the system to adapt to market regimes, not fixed parameters.

8. AI Confirmation Logic
Purpose

Prevents trades against dominant market pressure.

AI Strength Concept

AI strength is derived from the relative balance between bullish and bearish clusters.

Rules

Longs require positive AI strength

Shorts require negative AI strength

Confidence threshold is user-adjustable

9. Final Signal Logic (Everything Must Agree)
Long Signal Requires

✔ WaveTrend oversold
✔ WVF bullish reversal or combined signal memory
✔ AI bullish confirmation (optional)
✔ Multi-timeframe oversold alignment (optional)

Short Signal Requires

✔ WaveTrend overbought
✔ WVF bearish reversal or combined signal memory
✔ AI bearish confirmation (optional)
✔ Multi-timeframe overbought alignment (optional)

Only then does the system generate AI-Confirmed LONG / SHORT alerts.

Alerts & Visuals

WaveTrend crosses

Overbought / oversold warnings

WVF reversal alerts

AI-confirmed trade signals

Correlated labels for discretionary review

Who This Indicator Is For

✔ Advanced discretionary traders
✔ Algorithmic system builders
✔ Reversal & swing traders
✔ Confirmation-based strategies
✔ Traders who value confluence over frequency

Final Summary

Quantum Algo Matrix V2 is a fully integrated market-state engine, not a simple oscillator.

It combines:

Volatility

Momentum

Market structure

Timeframe alignment

AI-style adaptive clustering

to deliver high-confidence, low-noise trading signals designed for serious traders.

Penafian

Maklumat dan penerbitan adalah tidak bertujuan, dan tidak membentuk, nasihat atau cadangan kewangan, pelaburan, dagangan atau jenis lain yang diberikan atau disahkan oleh TradingView. Baca lebih dalam Terma Penggunaan.